A binding member is provided and includes: upper teeth having a tooth form configured to form a convex-concave portion on a recording material bundle; and lower teeth having a tooth form configured to form the convex-concave portion on the recording material bundle, and paired with the upper teeth. At least one of the upper teeth and the lower teeth includes: a first tooth row having a first tooth form having a first shape suitable for binding a first binding number of sheets; and a second tooth row having a second tooth form having a second shape suitable for binding a second binding number of sheets which is smaller than the first binding number of sheets.
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4. A binding member comprising:
upper teeth having a tooth form configured to form a convex-concave portion on a recording material bundle; and
lower teeth having a tooth form configured to form the convex-concave portion on the recording material bundle,
wherein at least one of the upper teeth and the lower teeth has a tooth surface length that is partially shortened without changing a positional relationship of inclined surfaces of teeth,
wherein at least one of the upper teeth and the lower teeth includes a first tooth row and a second tooth row, and
wherein the second tooth row is configured such that elongation of the recording material bundle is less than or equal to 18%.
1. A binding member comprising:
upper teeth having a tooth form configured to form a convex-concave portion on a recording material bundle; and
lower teeth having a tooth form configured to form the convex-concave portion on the recording material bundle,
wherein at least one of the upper teeth and the lower teeth includes:
a first tooth row having a first tooth form having a first shape suitable for binding a first binding number of sheets; and
a second tooth row having a second tooth form having a second shape suitable for binding a second binding number of sheets which is smaller than the first binding number of sheets, and
wherein the second tooth row is configured such that elongation of the recording material bundle is less than or equal to 18%.
9. A binding apparatus comprising:
a holding section configured to hold a recording material bundle; and
a binding member including a pair of upper teeth and lower teeth, the binding member being configured to form a convex-concave portion on the recording material bundle held by the holding section, with the upper teeth and the lower teeth, so as to perform binding processing,
wherein, when performing the binding processing by the upper teeth and the lower teeth, the binding member provides a difference in elongation amount of a recording material forming the recording material bundle between one end side and the other end side of every tooth row, or between one end side and the other end side of a tooth constituting the tooth row,
wherein at least one of the upper teeth and the lower teeth includes:
a first tooth row; and
a second tooth row, and
wherein the second tooth row is configured such that elongation of the recording material bundle is less than or equal to 18%.
12. An image processing system comprising:
an image forming section configured to form an image on a recording material; and
a binding section configured to form a convex-concave portion on a bundle of the recording material formed with the image by the image forming section, with a pair of upper teeth and lower teeth, so as to perform binding processing,
wherein, the binding section is configured such that, when performing the binding processing by the upper teeth and the lower teeth, the binding section provides a difference in elongation amount of a recording material forming the recording material bundle between one end side and the other end side of every tooth row, or between one end side and the other end side of a tooth constituting the tooth row,
wherein at least one of the upper teeth and the lower teeth includes:
a first tooth row; and
a second tooth row, and
wherein the second tooth row is configured such that elongation of the recording material bundle is less than or equal to 18%.
13. A binding member comprising:
upper teeth having a tooth form configured to form a convex-concave portion on a recording material bundle; and
lower teeth having a tooth form configured to form the convex-concave portion on the recording material bundle,
wherein at least one of the upper teeth and the lower teeth includes:
a first tooth row having a first tooth form having a first shape suitable for binding a first binding number of sheets; and
a second tooth row having a second tooth form having a second shape suitable for binding a second binding number of sheets which is smaller than the first binding number of sheets,
wherein the at least one of the upper teeth and the lower teeth further includes a third tooth row having the first tooth form having the first shape suitable for binding the first binding number of sheets,
wherein teeth of the first tooth row and teeth of the third row have a first height from one end side to the other end side of the teeth in a longitudinal direction of the teeth,
wherein teeth of the second tooth row have a second height from one end side to the other end side of the teeth in a longitudinal direction of the teeth,
wherein the first height is greater than the second height,
wherein the second tooth row is interposed between the first tooth row and the third row, and
wherein the first shape and the second shape both comprise a rounded-shaped tip end.
2. The binding member according to
3. The binding member according to
5. The binding member according to
6. The binding member according to
7. The binding member according to
8. The binding member according to
10. The binding apparatus according to
11. The binding apparatus according to
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This application is based on and claims priority under 35 USC 119 from Japanese Patent Application No. 2016-066533 filed on Mar. 29, 2016.
The present invention relates to a binding member, a binding apparatus, and an image processing system.
An aspect of an exemplary embodiment of the present invention provides a binding member including:
upper teeth having a tooth form configured to form a convex-concave portion on a recording material bundle; and
lower teeth having a tooth form configured to form the convex-concave portion on the recording material bundle, and paired with the upper teeth,
in which at least one of the upper teeth and the lower teeth includes:
a first tooth row having a first tooth form having a first shape suitable for binding a first binding number of sheets; and
a second tooth row having a second tooth form having a second shape suitable for binding a second binding number of sheets which is smaller than the first binding number of sheets.
Exemplary embodiments of the present invention will be described in detail based on the following figures, wherein:
Hereinafter, exemplary embodiments of the present invention will be described in detail with reference to the accompanying drawings.
The recording material processing system 500 functioning as a kind of an image processing system is provided with an image forming apparatus 1 that forms an image on a recording material (sheet) such as a sheet P using an electrophotographic method or the like in an image forming section, and a post-processing apparatus 2 that executes post processing on a plurality of sheets P on which the image has been formed by the image forming apparatus 1.
The image forming apparatus 1 includes four (4) image forming units 100Y, 100M, 100C, and 100K (which may be collectively referred to as “image forming units 100”) that execute image formation based on individual color image data. Further, the image forming apparatus 1 is provided with a laser exposure unit 101 to expose a photoconductor drum 107 provided in each of the image forming units 100 so as to form an electrostatic latent image on a surface of the photoconductor drum 107.
The image forming apparatus 1 is also provided with an intermediate transfer belt 102 to which toner images of respective colors formed on the image forming units 100 are multiple-transferred, and primary transfer rolls 103 that sequentially transfer (primarily transfers) the toner images of respective colors formed on the image forming units 100 to the intermediate transfer belt 102. In addition, the image forming apparatus 1 is also provided with a secondary transfer roll 104 that batch-transfers (secondarily transfers), to the sheet P, toner images of colors transferred onto the intermediate transfer belt 102, a fixing device 105 that fixes the secondarily transferred toner images of colors to the sheet P, and a body controller 106 that controls an operation of the image forming apparatus 1.
In each of the image forming units 100, the charging of the photoconductor drum 107 and the formation of an electrostatic latent image on the photoconductor drum 107 are performed. Further, the development of the electrostatic latent image is performed so that the toner image of each color is formed on a surface of the photoconductor drum 107.
The toner images of respective colors formed on the surfaces of the photoconductor drums 107 are sequentially transferred to the intermediate transfer belt 102 by the primary transfer rolls 103. The toner images of respective colors are transported to a position where the secondary transfer roll 104 is installed according to the movement of the intermediate transfer belt 102.
Different sizes or different kinds of sheets P are accommodated in sheet accommodating units 110A to 110D of the image forming apparatus 1. In addition, for example, a sheet P is extracted from the sheet accommodating unit 110A by a pickup roll 111, and then is transported to a registration roll 113 by a transport roll 112.
In addition, in line with timing of transporting the toner images of respective colors on the intermediate transfer belt 102 to the secondary transfer roll 104, the sheet P is fed from the registration roll 113 to a facing unit (secondary transfer section) where the secondary transfer roll 104 faces the intermediate transfer belt 102.
The toner images of respective colors on the intermediate transfer belt 102 are electrostatically batch-transferred (secondarily transferred) to the sheet P by the action of a transfer electric field generated by the secondary transfer roll 104.
Subsequently, the sheet P to which the toner images of respective colors are transferred is released from the intermediate transfer belt 102 and then transported to the fixing device 105. The fixing device 105 fixes the toner images of respective colors onto the sheet P by a fixing process using heat and pressure so that an image is formed on the sheet P.
The sheet P formed with the image is discharged from a sheet discharge section T of the image forming apparatus 1 by the transport roll 114, and then fed to the post-processing apparatus 2 connected to the image forming apparatus 1.
The post-processing apparatus 2 is arranged on the downstream side of the sheet discharge section T of the image forming apparatus 1 to perform post-processing, such as punching or binding, on the sheet P formed with the image.
As illustrated in
In addition, the post-processing apparatus 2 includes a sheet processing controller 23 to control each mechanism of the post-processing apparatus 2. The sheet processing controller 23 is connected to the body controller 106 (see
The post-processing apparatus 2 includes a stacker unit 80 on which sheets P (sheet bundle B) on which processing by the post-processing apparatus has been terminated 2 are stacked.
As illustrated in
In addition, the transport unit 21 is provided with a plurality of transport rolls 211 to transport the sheet P, on which the image has been formed by the image forming apparatus 1, towards the finisher unit 22.
The finisher unit 22 is provided with a binding processing device 600 to execute binding processing on a sheet bundle B as an example of the recording material bundle. The binding processing device 600 according to the present exemplary embodiment functions as a binding unit, and performs the binding processing on the sheet bundle B without using a staple (needle).
The binding processing device 600 is provided with a sheet accumulating section 60 to accumulate only a required number of sheets P while simultaneously supporting the sheets P from the underside so as to produce the sheet bundle B. Further, the binding processing device 600 is provided with a binding unit 50 to bind the sheet bundle B. The sheet accumulating section 60 functions as one holding unit to hold the sheet bundle B that is a recording material bundle.
The present exemplary embodiment performs binding processing on the sheet bundle B by pressing advancement members (to be described later) provided in the binding unit 50 to the sheet bundle B from the both sides of the sheet bundle B so that the sheets P constituting the sheet bundle B are press-bonded to each other [cause the fibers forming the sheets P to be entangled], thereby binding the sheet bundle B.
Also, the binding processing device 600 is provided with a take-out roll 61 and a moving roll 62. The take-out roll 61 rotates in a clockwise direction in the drawing so as to send the sheet bundle B on the sheet accumulating section 60 to the stacker unit 80.
The moving roll 62 is provided to be movable around a rotating shaft 62a, and is located at a position retracted from the take-out roll 61 when the sheets P are accumulated in the sheet accumulating section 60. Further, when the produced sheet bundle B is sent to the stacker unit 80, the moving roll 62 is pressed against the sheet bundle B on the sheet accumulating section 60.
The processing performed by the post-processing apparatus 2 will be described.
In the present exemplary embodiment, an instruction signal indicating execution of processing for a sheet P is outputted from the body controller 106 to the sheet processing controller 23. The sheet processing controller 23 receives the instruction signal, and the post-processing apparatus 2 performs the processing on the sheet P.
In the processing of the post-processing apparatus 2, first, a sheet p on which image formation has been performed by the image forming apparatus 1 is fed to the transport unit 21 of the post-processing apparatus 2. In the transport unit 21, punching is performed by the punching section 30 in response to the instruction signal from the sheet processing controller 23, and then the sheet P is transported towards the finisher unit 22 by the transport roll 211.
When there is no instruction to perform the punching from the sheet processing controller 23, the sheet P is delivered to the finisher unit 22 in a state where the punching processing is not performed by the punching section 30.
The sheet P sent to the finisher unit 22 is transported to the sheet accumulating section 60 that is provided in the binding processing device 600. The sheet P is slid over the sheet accumulating section 60 due to an inclination angle imparted to the sheet accumulating section 60, and thereby comes into contact with a sheet regulating section 64 provided on an end of the sheet accumulating section 60.
Thus, the sheet P stops moving. In the present exemplary embodiment, the sheet P comes into contact with the sheet regulating section 64, so that the sheet bundle B is produced on the sheet accumulating section 60 with rear ends of the sheets P being evenly arranged. Further, in the present exemplary embodiment, a rotary paddle 63 is provided to move the sheets P towards the sheet regulating section 64.
First moving members 81 are provided on opposite ends of the sheet accumulating section 60 in a widthwise direction thereof.
The first moving members 81 are pressed against the sides of the sheets P constituting the sheet bundle B, thereby aligning the ends of the sheets P of the sheet bundle B. Further, the first moving members 81 moves in the widthwise direction of the sheet bundle B so as to move the sheet bundle B in the widthwise direction of the sheet bundle B.
More specifically, in the present exemplary embodiment, when the sheets P are accumulated in the sheet accumulating section 60, the first moving members 81 are pressed against the sides of the sheets P so that the sides of the sheets P are aligned.
In addition, as will be described later, when the binding position of the sheet bundle B is changed, the sheet bundle B is pressed by the first moving members 81 to be moved in the widthwise direction of the sheet bundle B.
In addition, the binding processing device 600 of the present exemplary embodiment is provided with a second moving member 82.
The second moving member 82 moves in the up-down direction of the drawing so as to move the sheet bundle B in a direction perpendicular to the widthwise direction of the sheet bundle B.
In the present exemplary embodiment, the binding processing device 600 is also provided with a moving motor M1 to move both the first and second moving members 81 and 82.
As shown by arrow 4A of
In addition, the binding unit 50 moves to position C of
Further, the binding unit 50 moves linearly between position A and position B, whereas the binding unit 50 moves between position A and position C while performing, for example, a 45° rotation.
The sheet regulating section 64 is formed in a U-shape. A regulating section (not illustrated) is provided in the inside of the U-shape to extend upwards from a bottom plate 60A, and comes into contact with the tip end of a transported sheet P in the regulating section so as to regulate the movement of the sheet P. The sheet regulating section 64 formed in the U-shape has a facing unit 60C that is disposed to face the bottom plate 60A. This facing unit 60C comes into contact with the uppermost sheet P of the sheet bundle B to regulate the movement of the sheet P in a thickness direction of the sheet bundle B.
In the present exemplary embodiment, the binding processing is performed by the binding unit 50 at a position where the sheet regulating section 64 or the second moving member 82 is not installed.
More specifically, as illustrated in
In addition, as illustrated in
In the present exemplary embodiment, when the binding unit 50 moves, the second moving member 82 moves to a position denoted by reference numeral 4B in
As illustrated in
The first driving section 51 is provided with a driving piece 511. The driving piece 511 is formed in a plate shape to have one end at the sheet bundle B side and the other end at the side opposite to the one end.
In the present exemplary embodiment, upper teeth 510 are attached to the one end of the driving piece 511. The upper teeth 510 advance from one surface side of the sheet bundle B towards the sheet bundle B to press the sheet bundle B. Further, a protrusion 511B is provided on the driving piece 511 to protrude towards the second driving section 52 side, and a through hole 511A is formed in the protrusion 511B.
As illustrated in
The driving piece 521 is formed in a plate shape to have one end at the sheet bundle B side and the other end at a side opposite to the one end. According to the present exemplary embodiment, lower teeth 520 are attached to the one end of the driving piece 521. The lower teeth 520 advance towards the other side of the sheet bundle B to press the sheet bundle B.
Further, a protrusion 521B is provided on the driving piece 521 to protrude towards the first driving section 51 side, and the protrusion 512 is formed with a through hole (located behind the through hole 511A of the first driving section 51 and not illustrated).
In addition, in the present exemplary embodiment, a pin PN is inserted into the through hole 511A formed in the first driving section 51 and the through hole (not illustrated) formed in the second driving section 52. In the present exemplary embodiment, the driving piece 511 and the driving piece 521 rock around the pin PN.
Further, in the present exemplary embodiment, the upper and lower teeth 510 and 520 are provided nearer to the sheet bundle B side than the pin PN, and the cam 53 is provided on the side opposite to the side into which the pin PN is fitted and on which the sheet bundle B is placed.
In the present exemplary embodiment, when the cam 53 is rotated by the cam motor M2, the upper and lower teeth 510 and 520 move close to each other, as illustrated in
Here, a relationship between the size of the tooth of the binding member and the sheet bundle B will be described.
The size of tooth form of the binding member that is operated by the upper and lower teeth 510 and 520 is related to adhesion that is a binding property of the sheet bundle B. In an example illustrated in
In an example illustrated in
Meanwhile, in an example illustrated in
As described above, there is a close connection between the size of a tooth form and the thickness of a sheet bundle B. Thus, when it is desired to handle both a small number of sheets and a large number of sheets using a single device (e.g., binding processing device 600), complicated handling (such as preparing a plurality of kinds of binding members and changing the binding members depending on the number of sheets) is required.
However, the present exemplary embodiment handles the problems described above by providing a binding member having both an elongation amount region for a small number (e.g., two (2)) of sheets P (in which a small number of sheets is excellently in close contact with each other) and an elongation amount region for a large number (e.g., ten (10)) of sheets P (in which a large number of sheets are excellently in close contact with each other). More specifically, a plurality of teeth with adjusted tip ends R is arranged in at least one side of the upper teeth 510 and the lower teeth 520 of a single binding member in order to provide a binding member that handles both a small number of sheets and a large number of sheets.
In
The state illustrated on the right side of
Meanwhile, the state illustrated on the left side of
In the present exemplary embodiment, the elongation amount region for a large number of sheets P and the elongation amount region for a small number of sheets P in which the tip end of the tooth is cut to increase the tip end R and to shorten the surface length of the tooth is shortened are provided in one binding member.
Hereinafter, embodiments will be described based on a difference in a way of having these regions.
Next, a first exemplary embodiment of the binding member to which the present exemplary embodiment is applied will be described.
As illustrated in
In the examples illustrated in
As illustrated in
In the first exemplary embodiment, the respective teeth constituting the first tooth row 520A and the second tooth row 520B extend in the same shape as the shape illustrated in
In the present exemplary embodiment, the positional relationship of the inclined surfaces is not changed in the first and second tooth forms. That is, the heights of teeth are changed in the first and second tooth forms, but the angle of the inclined surfaces of the teeth and a pitch between teeth are not changed.
In addition, since the sheets P are pulled and extended by elongation of the sheets P of adjoining teeth, it is difficult to obtain effects unless a plurality of teeth is continuously arranged. In the present exemplary embodiment, excellent results were obtained by continuously arranging four or more teeth, based on certain experimental results. The influence from the adjoining teeth is also found in other exemplary embodiments.
In the lower teeth 520, two first tooth rows 520A are arranged with the second tooth row 520B being interposed therebetween. That is, the tooth row having a large tip end R to make the elongation amount of the sheets P small (second tooth row 520B) is located at the center. Teeth 510C, which do not exhibit a binding force, are arranged at both ends of the row of upper teeth 510. Other than the teeth 510C, teeth which has the same tooth form as the first tooth row 520A and have a small tip end R to make the elongation amount of the sheets P large, are arranged in the remaining portion. The lower teeth 520 and the upper teeth 510 alternately face each other such that the convex portions of the lower teeth 520 correspond to the concave portions of the upper teeth 510, respectively. With such an arrangement of the lower teeth 520 and the upper teeth 510, a good binding force for a large number of sheets (e.g., ten (10) sheets) becomes excellent in the region of the first tooth row 520A, and in this region, a binding force for a small number of sheets (e.g., two sheets) is minute. Meanwhile, in the region of the second tooth row 520B, a binding force for a small number of sheets (e.g., two (2) sheets) is excellent. In this region, it is impossible to obtain a binding force required for a large number of sheets (e.g., ten (10) sheets). However, according to the present exemplary embodiment, a binding member may be provided in which a paper P elongation amount region for a small number of sheets, of which the shape is determined to be suitable for a small number of sheets, and a paper P elongation amount region for a large number of sheets, of which the shape is determined to be suitable for a large number of sheets are arranged at a predetermined array number in a state where interference between adjoining teeth is reduced, and the binding for the small number of sheets and the binding for the large number of sheets can be simultaneously achieved by one binding operation.
In addition, the first exemplary embodiment illustrated in
Next, a second exemplary embodiment of the binding member, to which the present exemplary embodiment is applied, will be described.
In the second exemplary embodiment, in at least one of the upper teeth 510 and the lower teeth 520, the surface length of the teeth is partially shortened without changing the positional relationship of the inclined surfaces of the teeth. In the example illustrated in
In addition, in the second exemplary embodiment, as illustrated in
Next, a third exemplary embodiment of the binding member to which the present exemplary embodiment is applied will be described.
In the third exemplary embodiment, in the lower teeth 520, the second tooth form portions 520F are provided in a region where the teeth 520I present in the central portion of the lower teeth 520 are set to be long in the longitudinal direction, and the teeth 520I are continuously arranged, thereby forming the region 2 in which the bonding for the sheet bundle B having a small number of sheets (e.g., two (2) sheets) is excellent. In the region 1 other than the region 2, where the first tooth form portions 520D are continuously arranged, the elongation amount of the sheets P is increased so that the sheet bundle B having a large number of sheets (e.g., ten (10) sheets) is excellently bound. In the upper teeth 510, teeth are used in which the tip end R of the teeth having the same tooth form as the first tooth form portion 520D is small and the surface length of the teeth is long. Teeth 510I, of which the length in the longitudinal direction is set to be long, are arranged In the upper teeth 510 facing the tooth 520I of the lower teeth 520. Further, teeth 510J having a moderate length are disposed in the upper teeth 510 at the positions facing the lower teeth 520 in the vicinity of both ends of the region 2 of the lower teeth 520, so as to suppress the sheets P from being rapidly extended. Moreover, teeth 510C, which do not apply a binding force, are arranged on both ends of the row of upper teeth 510.
As in the first exemplary embodiment illustrated in
In addition, in the example illustrated in
Next, a fourth exemplary embodiment of the binding member to which the present exemplary embodiment is applied will be described.
The configuration of the lower teeth 520 remains the same as the first exemplary embodiment of
Further, teeth 510C, which do not apply a binding force, are arranged on opposite ends of the row of upper teeth 510, as in the other configuration examples.
Next, a fifth exemplary embodiment of the binding member to which the present exemplary embodiment is applied will be described.
The binding members to which the present exemplary embodiment is applied include first tooth rows 510M and 520M having a first tooth form in which a positional relationship of inclined surfaces is determined to be suitable for the first binding number of sheets (i.e., a first positional relationship suitable for binding a first binding number of sheets), and second tooth rows 510N and 520N having a second tooth form in which a positional relationship of inclined surfaces to be suitable for the second binding number of sheets (i.e., a second positional relationship suitable for binding a second binding number of sheets) which is smaller than the first binding number of sheets. As the first binding number of sheets of a sheet bundle B, for example, 6 to 10 sheets may be selected, while as the second binding number of sheets of the sheet bundle B, for example 2 to 5 sheets may be selected.
Compared to the first tooth form constituting the first tooth rows 510M and 520M, the second tooth form constituting the second tooth row 510N and 520N has a gentle angle in the inclined surfaces of the teeth. More specifically, for example, the first tooth form is cut to be raised at 60 degrees from a horizontal, and the second tooth is cut to be raised at 45 degrees from the horizontal. As illustrated in
In the fifth exemplary embodiment, although the positional relationship of the inclined surfaces is changed, a sheet bundle B almost simultaneously comes into contact with the inclined surfaces of the first tooth rows 510M and 520M and the inclined surfaces of the second tooth rows 510N and 520N when convex and concave portions are formed on the sheet bundle B by the upper and lower teeth 510 and 520. When the sheet bundle B has a small number of sheets (e.g., 2 to 5 sheets), the sheet bundle B is subjected to an appropriately short elongation by the second tooth rows 510N and 520N having a low elongation rate, so that excellent binding is realized. On the other hand, when the sheet bundle B has a large number of sheets (e.g., 6 to 10 sheets), an appropriately long elongation can be achieved by the second tooth rows 510M and 520M having a high elongation rate, so that excellent binding is realized. In order to increase the entire elongation amount, the number of teeth may be increased, and in order to reduce the entire elongation amount, the number of teeth may be reduced.
Further, for the second tooth rows 510N and 520N of the fifth exemplary embodiment, the height of the teeth may be lowered and the surface length of the teeth may be shortened in order to further reduce the elongation amount, as in the second tooth row 520B of the first exemplary embodiment illustrated in
The foregoing description of the exemplary embodiments of the present invention has been provided for the purposes of illustration and description. It is not intended to be exhaustive or to limit the invention to the precise forms disclosed. Obviously, many modifications and variations will be apparent to practitioners skilled in the art. The embodiments were chosen and described in order to best explain the principles of the invention and its practical applications, thereby enabling others skilled in the art to understand the invention for various embodiments and with the various modifications as are suited to the particular use contemplated. It is intended that the scope of the invention be defined by the following claims and their equivalents.
Kusumoto, Yasuhiro, Tsutsumi, Kojiro, Hagiwara, Hiroshi, Awano, Hiroaki, Nakano, Yoshinori, Harada, Katsumi, Shiraishi, Emiko, Hirota, Junichi, Makita, Takuya
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